Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.
VAR="-e xyz"
echo $VAR

This prints "xyz", for some reason. I don't seem to be able to find a way to get a string to start with -e.

What is going on here?

share|improve this question

4 Answers 4

up vote 4 down vote accepted

The variable VAR contains -e xyz, if you access the variable via $ the -e is interpreted as a command-line option for echo. Note that the content of $VAR is not wrapped into "" automatically.

Use echo "$VAR" to fix your problem.

share|improve this answer

Try:

echo "$VAR"

instead.

(-e is a valid option for echo - this is what causes this phenomenon).

share|improve this answer

The -e is being interpreted by bash as an argument to echo. Try

echo "$VAR"
share|improve this answer

The answers that say to put $VAR in quotes are only correct by side effect. That is, when put in quotes, echo(1) receives a single argument of "-e xyz", and since that is not a valid option string, echo(1) just prints it out. It is a side effect as echo(1) could just as easily print an error regarding malformed options. Most programs will do this, but it seems GNU echo (from core utils) and the version built into bash simply echo strings that start with a hyphen but are not valid argument strings. This behaviour is not documented so it should not be relied upon.

Further, if $VAR contains a valid echo(1) option argument, then quoting $VAR will not help:

$ VAR="-e"
$ echo "$VAR"

$

Most GNU programs take "--" as an argument to mean no more option processing - all the arguments after "--" are to be processed as non-option arguments. Bash/GNU echo does not support this so you cannot use it. Even if it did, it would not be portable. echo(1) has other portability issues (-n vs \c, no -e).

The correct and portable solution is to use printf(1).

printf "%s\n" "$VAR"
share|improve this answer
    
Mostly correct answer. Although POSIX standard clearly says "Implementations shall not support any options", historically part of implementations do support options (violating the standard). So printf is the right solution, echo should really be used to output some constant strings like "Hello world" which you know do not contain dashes or backslashes. –  Roman Cheplyaka Sep 8 '10 at 5:21
    
Great answer. Been trying to figure this out for a bit now. thank you. –  Todd Partridge 'Gen2ly' May 25 '12 at 23:23

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.